School of Chemistry and Materials Science, Ludong University, Key Laboratory of High Performance and Functional Polymer in the Universities of Shandong Province, Collaborative Innovation Center of Shandong Province for High Performance Fibers and Their Composites, Yantai 264025, China.
School of Chemistry and Materials Science, Ludong University, Key Laboratory of High Performance and Functional Polymer in the Universities of Shandong Province, Collaborative Innovation Center of Shandong Province for High Performance Fibers and Their Composites, Yantai 264025, China.
Int J Biol Macromol. 2023 Dec 1;252:126473. doi: 10.1016/j.ijbiomac.2023.126473. Epub 2023 Aug 22.
The detection of human motion and sweat composition are important for human health or sports training, so it is necessary to develop flexible sensors for monitoring exercise processes and sweat detection. Mussel secretion of adhesion proteins enables self-healing of byssus and adhesion to surfaces. We prepared Au nanoparticles@polydopamine (AuNPs@PDA) nanomaterials based on mussel-inspired chemistry and compounded them with polyvinyl alcohol (PVA) hydrogels to obtain PVA/AuNPs@PDA self-healing nanocomposite hydrogels. Dopamine (DA) was coated on the surface of AuNPs to obtain AuNPs based composite (AuNPs@PDA) and the AuNPs@PDA was implanted into the PVA hydrogels to obtain nanocomposite hydrogel through facile freeze-thaw cycle. Glucose oxidase (GOD) was added to the hydrogel matrix to achieve specific detection of glucose in sweat. The obtained hydrogels exhibit high deformability (573.7 %), excellent mechanical strength (550.3 KPa) and self-healing properties (85.1 %). The PVA/AuNPs@PDA hydrogel sensors exhibit quick response time (185.0 ms), wide strain sensing range (0-500 %), superior stability and anti-fatigue properties in motion detection. The detection of glucose had wide concentration detection range (1.0 μmol/L-200.0 μmol/L), low detection limits (0.9 μmol/L) and high sensitivity (24.4 μA/mM). This work proposes a reference method in dual detection of human exercise and sweat composition analysis.
人类运动和汗液成分的检测对于人类健康或运动训练至关重要,因此有必要开发用于监测运动过程和汗液检测的柔性传感器。贻贝分泌的粘附蛋白使贻贝能够自我修复和粘附在表面上。我们基于贻贝启发的化学原理制备了纳米金颗粒@聚多巴胺(AuNPs@PDA)纳米材料,并将其与聚乙烯醇(PVA)水凝胶复合,得到了 PVA/AuNPs@PDA 自修复纳米复合水凝胶。多巴胺(DA)涂覆在 AuNPs 表面,得到基于 AuNPs 的复合材料(AuNPs@PDA),并通过简单的冻融循环将 AuNPs@PDA 植入 PVA 水凝胶中,得到纳米复合水凝胶。将葡萄糖氧化酶(GOD)加入到水凝胶基质中,以实现对汗液中葡萄糖的特异性检测。所得到的水凝胶表现出高的可变形性(573.7%)、优异的机械强度(550.3 kPa)和自修复性能(85.1%)。PVA/AuNPs@PDA 水凝胶传感器在运动检测中表现出快速的响应时间(185.0 ms)、宽的应变传感范围(0-500%)、优异的稳定性和抗疲劳性能。葡萄糖的检测具有宽的浓度检测范围(1.0 μmol/L-200.0 μmol/L)、低检测限(0.9 μmol/L)和高灵敏度(24.4 μA/mM)。这项工作提出了一种用于人体运动和汗液成分双重检测的参考方法。